ROTATING INSERT FOR HEAT EXCHANGER TUBE

A rotating insert with a dual-pitch helical winding addresses the limited operational range of rotary inserts by enhancing turbulence and reducing fouling at low flow velocities, improving heat transfer efficiency and flexibility.

FR3165061A1Pending Publication Date: 2026-01-30IFP ENERGIES NOUVELLES
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Patent Information

Application Number
FR2024008257
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-25
Publication Date
2026-01-30

AI Technical Summary

Technical Problem

Rotary inserts for heat exchanger tubes operate optimally only within a limited flow velocity range, particularly failing at low fluid flow velocities, leading to reduced fouling and heat transfer efficiency and increased pressure drop.

Method used

A rotating insert with a rigid helical winding featuring two sections of differing pitches, a tighter first pitch followed by a larger second pitch, allowing operation at low fluid flow velocities and enhancing turbulence for improved heat transfer and reduced fouling.

Benefits of technology

The insert achieves efficient heat transfer and reduced fouling at low flow velocities with minimal pressure loss, extending operational flexibility and improving the lifespan of heat exchangers.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a heat exchanger tube insert (10) for improving heat transfer efficiency and / or reducing fouling of heat exchanger tubes in industrial units, for example, units used in petroleum refining, petrochemicals, or the chemical industry in general. The insert comprises a rotating, spring-shaped moving element (1) having a tighter pitch p1 at the tube inlet (10) compared to the rest of the moving element. Figure 3 to be published
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Description

Title of the invention: ROTARY INSERT FOR HEAT EXCHANGER TUBE technical field

[0001] The present invention relates to the field of inserts for tubular heat exchangers used to improve heat transfer efficiency and / or reduce fouling of heat exchanger tubes in industrial units, for example, units used in oil refining, petrochemicals, or the chemical industry in general. In particular, the present invention relates to a tubular heat exchanger insert comprising a rotating, spring-shaped moving element having a tighter pitch at the tube inlet. Previous technique

[0002] Heat exchanger insert technologies are used to improve heat transfer efficiency and reduce fouling of industrial heat exchanger tubes.

[0003] In many fields, such as oil refining, petrochemicals, and other fields of chemistry, food processing, and energy, industrialists are indeed concerned with optimizing heat transfer in the heat exchangers used, but also confronted with the problem of deposits in said exchangers, which may come from impurities present in the liquid streams from various processes that pass through the heat exchangers, and / or from the decomposition or formation of organic products such as polymers or hydrocarbons and mineral products in said liquid streams.

[0004] These may be suspended impurities accumulating, deposits of mineral salts dissolved in liquid streams, coke forming, or sulfur compounds soluble in hydrocarbon streams. These deposits can be generated by excessive fluid temperatures or result from corrosion. These deposits, which gradually accumulate on the walls of the heat exchanger tubes over time, impair the performance of the heat exchangers, which thus lose efficiency over time. The deposits form a solid substance with low thermal conductivity, which insulates the walls and reduces heat transfer within the heat exchanger, ultimately harming the energy efficiency of the industrial processing or manufacturing unit using the heat exchanger. Another consequence of these deposits forming on the internal walls of the heat exchanger tubes can be reduced flow rates, which are detrimental to proper operation. The operation of the downstream process and / or hot spots on the internal surface of the tube. These restrictions and / or hot spots can lead to deterioration of the tube structure and thus cause product leaks that can be dangerous for the operator and / or equipment.

[0005] The use of inserts in heat exchangers is thus aimed at improving heat transfers, in particular because the inserts promote turbulence which leads to a reduction in the thermal boundary layer, which decreases the resistance to heat transfer and therefore improves the efficiency of heat transfer, and at preventing fouling of heat exchangers.

[0006] They constitute a very interesting and promising solution to support the reduction of energy consumption and consequently CO2 emissions from industrial processes implementing heat exchangers, as can be the case in all the areas mentioned above.

[0007] In the field of oil refining, for example, there are many units using heat exchangers, which are particularly susceptible to fouling. Refining crude oil by preheating it with the hot atmospheric residue exiting an atmospheric distillation unit is one example. Many so-called heavy crude oils are very rich in asphaltenic compounds, which can form sediments, as well as in sulfur and other corrosive compounds that are prone to depositing on the internal walls of the heat exchanger tubes through which they circulate.

[0008] There are many different forms of inserts in the industry, such as a winding of a metal wire, a twisted band, a central shaft with blades, said inserts being able to include moving and / or static parts, and being able to be fixed or not to the tube, and where appropriate in different ways, for example on one end only or at both ends of the tube. Two main types of inserts for tubular heat exchangers can be distinguished: static inserts and rotating inserts driven by the flow of the liquid through the tube. Both types of inserts promote heat transfer and reduce fouling. However, rotating inserts generally offer better performance, both in terms of fouling reduction, thanks to the mechanical effect of the insert's rotation, and in terms of pressure drop, a crucial factor for insert performance. The presence of the insert, which occupies part of the tube, increases resistance to fluid flow, which can be problematic if this resistance is excessive. Typically, excessive pressure drop affects the capacity and energy consumption of the pumps and turbines that circulate the fluid and compensate for the pressure drop.Thus, it is generally desired. Minimal pressure drop, meaning a drop that is limited compared to the pressure drop of a tube without an insert, is essential to avoid compromising the heat exchanger's energy efficiency and even to prevent the need to modify the fluid circulation equipment upstream of the exchanger. A rotating insert generally results in less pressure drop than a fixed insert, for example, up to 40% less.

[0009] An example of a rotating insert for a heat exchanger tube is described, for instance, in patent FR2569829. The insert comprises a rigid, solenoid-shaped metal winding that is rotated by the fluid flowing in the tube. The rigid insert is configured to allow free rotation of the winding about the axis of the tube. The pitch of the metal winding can be fixed or variable.

[0010] Figure 1 illustrates a rotating insert of this type, comprising a rigid helical metal winding with a plurality of turns, of length L, diameter D, pitch p, and angle of inclination α(a) defined with respect to the central axis of the winding coinciding with the axis X of the heat exchanger tube in which the insert is mounted. The metal rod forming the winding has a thickness e. The metal winding has a free end and an end fitted with a ring passing through the hook of a rotating trunnion held in the bore of a bearing, allowing the insert to rotate freely about itself around the axis of the heat exchanger tube. The bearing consists of a stirrup-shaped part with two prongs at its ends for attachment to the tube (tube not shown), and a central part with a bore for retaining the trunnion.At its end opposite the hook, the trunnion has a washer-shaped head designed to hold it captive in the bearing.

[0011] A problem often encountered when using rotary inserts is a lack of flexibility regarding the possible operating range for the flow velocity of the fluid sent through the tube: their operation is generally optimal only within a limited range. Indeed, the mechanical effect provided by the rotation of the insert decreases rapidly when the flow velocity is low, typically below approximately 1 m / s, resulting in lower insert efficiency in reducing fouling (and therefore heat transfer) and a greater pressure drop.

[0012] This lack of flexibility is therefore a disadvantage for addressing a wide range of fluids circulating in heat exchangers, and especially low-flow fluids such as certain heavy hydrocarbon loads which can, for example, be particularly viscous under given temperature and pressure conditions, or in the event of fluctuations in flow rate or fluid viscosity circulating, linked to changes in the nature / composition of circulating fluids or operating conditions, can lead to a slowing down of the circulating fluid. Objectives and Summary of the Invention

[0013] The present invention aims to overcome, at least in part, the prior art problems described above, and in particular to improve the operational flexibility of a rotary tubular heat exchanger insert, specifically to provide an insert that can be operated at low fluid flow velocities in the tube, typically at flow velocities below 1 m / s, to ensure a mechanical effect by rotating it at these low flow velocities. It is thus proposed to provide a rotary insert with a low rotation threshold, enabling it to operate at low fluid flow velocities in the tube.

[0014] In general, the present invention aims to provide a device for reducing fouling and / or improving heat exchange for heat exchanger tubes that is robust (risk of breakage minimized), that limits pressure losses while being able to be used at low fluid flow velocities in the tube.

[0015] Thus, to achieve at least one of the aforementioned objectives, among others, the present invention proposes, according to a first aspect, an insert for a heat exchanger tube, the insert comprising a rotating movable element having a rigid helical winding of a rod comprising several turns, said element having: a first end fixed to a mechanical link of a system for fixing said element to the tube, the mechanical link allowing the free rotation of the element on itself around the axis (X) of the tube under the action of a fluid passing through the tube, a second free end, and the rigid helical winding being constituted by a first section of length L1 originating at the first end and a second section of length L2 in the extension of the first section, the first pitch pl of the turns of the first section being smaller than the second pitch p2 of the turns of the second section.

[0016] According to one or more embodiments of the invention, the pitch pl is between 5 mm and 20 mm, preferably between 5 mm and 15 mm.

[0017] According to one or more embodiments of the invention, the pitch p2 is between 10 mm and 60 mm, preferably between 20 mm and 40 mm, it being understood that p2 > pl.

[0018] According to one or more embodiments of the invention, the length L1 is between 100 mm and 3000 mm, preferably between 200 mm and 1000 mm.

[0019] According to one or more embodiments of the invention, the insert has a total length between 50% and 100% of the total length Lt of the heat exchanger tube.

[0020] According to one or more embodiments of the invention, the insert is inserted into a tube of total length Lt between 500 mm and 15,000 mm, preferably between 1,000 mm and 6,000 mm.

[0021] According to one or more embodiments of the invention, the rigid helical winding has a circular or square cross-section, preferably circular.

[0022] According to one or more embodiments of the invention, the diameter el of the winding stem of the first section and the diameter e2 of the winding stem of the second section are between 0.5 mm and 5 mm, preferably between 1 mm and 3 mm.

[0023] According to one or more embodiments of the invention, the diameter el of the winding stem of the first section and the diameter e2 of the winding stem of the second section are identical.

[0024] According to one or more embodiments of the invention, the diameter of the turns of the winding D is between 80% and 99% of the internal diameter of the exchanger tube Dt, preferably between 85% and 95%.

[0025] According to one or more embodiments of the invention, the rod of the rigid helical winding is metallic.

[0026] According to a second aspect, the present invention relates to a heat exchanger comprising a plurality of tubes through which a fluid passes, said heat exchanger comprising an insert according to the invention, fixed to the upstream end of at least one of said tubes.

[0027] According to a third aspect, the present invention relates to the use of a tubular heat exchanger insert according to the invention for preheating crude oil in an atmospheric distillation process of said crude oil, or for preheating a hydrocarbon feed in a hydroconversion or hydrotreating process of said hydrocarbon feed, or for evaporating or condensing a fluid in a nuclear power plant.

[0028] The tubular heat exchanger insert according to the invention is very advantageously used for preheating crude oil in an atmospheric distillation process of said crude oil.

[0029] Other objects and advantages of the invention will become apparent from the following description of particular embodiments of the invention, given by way of non-limiting examples, the description being made with reference to the attached figures described below. List of figures

[0030] [Fig.1]

[0031] Fig. 1, already described above, represents an insert and its method of attachment to the heat exchanger tube according to the prior art.

[0032] [Fig.2]

[0033] Fig. 2 is a three-dimensional (3D) schematic view of an embodiment of the insert according to the invention.

[0034] [Fig.3]

[0035] Fig. 3 represents the same embodiment as that illustrated in Fig. 2, further showing a portion of a heat exchanger tube and a system for fixing the insert to the tube.

[0036] [Fig.4]

[0037] Fig. 4 represents a rear view of a portion of the insert and heat exchanger tube according to the same embodiment as that illustrated in Figures 2 and 3.

[0038] [Fig.5]

[0039] Fig. 5 is a diagram of the rotational speed VR (RPM) of the insert as a function of the normalized fluid speed VF (VF / VFref) of an example of an insert according to the prior art and an example of an insert according to the invention.

[0040] [Fig.6]

[0041] Fig. 6 is a diagram of the normalized pressure loss (AP / APtv) as a function of the normalized fluid velocity VF (VF / VFref) generated by the inserts tested in the examples.

[0042] [Fig.7]

[0043] Fig. 7 is a three-dimensional (3D) schematic view of an insert not according to the invention.

[0044] In the figures, the same references designate identical or analogous elements. Description of the implementation methods

[0045] In this description, the term "include" is synonymous with (means the same as) "comprise", "include", and "contain", thus being inclusive or open, and not excluding other elements not mentioned. It is understood that the term "include" includes the exclusive and closed term "consist".

[0046] In this description, the expression "between ... and ..." means that the limit values ​​of the interval are included in the range of values ​​described, unless otherwise specified.

[0047] Furthermore, in this description, the terms "essentially" or "substantially" or "approximately" in relation to a reference value correspond to An approximation of ±10%, ±5%, preferably ±1%, most preferably ±0.5%. This could be a value for temperature, pressure, distance, speed, flow rate, compound content, etc.

[0048] In the present description, the various parameter ranges characterizing a given device, or relating to a step in a process implementing said device, such as ranges relating to dimensions (lengths, diameters, etc.), angles, pressure ranges, or temperature ranges, may be used alone or in combination. For example, in the sense of the present invention, a preferred range of pressure values ​​may be combined with a more preferred range of temperature values.

[0049] According to the present invention, the pressures are absolute pressures, also noted as abs., and are given in absolute MPa (or abs. MPa), unless otherwise indicated.

[0050] In this description, when mentioned, the positions "front", "rear", "horizontal", "vertical", etc. of the various elements of the insert and the heat exchanger tube are defined with respect to a tubular heat exchanger in the operating position and with respect to the direction of flow of the fluid passing through the heat exchanger tube.

[0051] In this description, the fluid flow velocity in the tube refers to the surface velocity of the fluid flowing in the tube V_SF, commonly understood to be the ratio between the volumetric flow rate of the fluid Q and the internal cross-section of the tube S: V_SF = Q / S. The same applies to the threshold speed for starting rotation of an insert, which is a surface velocity, more precisely a specific value of V_SF particular to the insert used.

[0052] In this description, "rigid" refers to the helical winding of a rod, preferably metallic, meaning a winding that does not deform, or hardly deforms, irreversibly under the action of the fluid that rotates the moving part containing said winding, under normal operating conditions of the heat exchanger tubes. In particular, said winding does not deform, or hardly deforms, irreversibly when the circulating fluid exhibits variations in speed, viscosity, and / or temperature.

[0053] In this description, a tube-side heat exchanger or tubular heat exchanger is understood to be a heat exchanger comprising at least one tube inside which flows a fluid commonly called the "tube-side fluid," exchanging heat with a fluid flowing outside said tube. The heat exchangers referred to in the present invention are classically shell-and-tube heat exchangers in which the tube-side fluid flows inside a set of parallel tubes called a tube bundle. These tubes are enclosed in a shell called a shell. The other fluid, called the "tube-side fluid," flows inside a set of parallel tubes called a tube bundle. The fluid circulates inside the shell but outside the tubes. Fluid flow on the tube and shell sides can be co-current and / or counter-current. The tubes are often very long, typically up to 6 meters, and have a small diameter to optimize the surface area to volume ratio. They are generally held at their ends in perforated plates called tube sheets, which serve to support the tubes and also to separate the fluids. Intermediate support plates (perforated plates transverse to the tubes) may support the tubes between the tube sheets. The tubes can also be U-shaped, and their ends may, for example, be attached to a single tube sheet.

[0054] In this description, the pitch of a helical winding comprising several turns is understood by the commonly accepted definition, which is the distance measured between the centers of two turns. In a two-dimensional representation, it is the distance between two crests on the same side of the winding axis, and in a 3D representation, it is the length (distance) between two turns around the axis of revolution of the turn (or the distance traveled along the axis of revolution of the turn to make one complete turn).

[0055] Embodiments of the insert, its use in a heat exchanger, and their applications are described in detail below. Many specific details are given to provide a more thorough understanding of the invention. However, it will be apparent to those skilled in the art that the insert, the heat exchanger incorporating such an insert, and their use can be implemented without necessarily including all these specific details. In other cases, well-known features have not been described in detail to avoid unnecessarily complicating the description.

[0056] In the present description, the different embodiments presented can be implemented separately or in combination with each other, without limitation of combinations when this is technically feasible.

[0057] The present invention proposes an insert for a heat exchanger tube.

[0058] With reference to figures 2 to 4, which represent one embodiment of the insert According to the invention, said insert comprises a rotating movable element 1 formed by a rigid helical winding of a rod, preferably metallic, having several turns. The rotating movable element 1 has a first end fixed to a mechanical link 22 of a fastening system 20 of the element 1 to the tube 10 of the heat exchanger, the mechanical link 22 allowing the free rotation of the element 1 about itself around the axis X of said tube 10 under the action of a fluid flowing through the tube (cylindrical tube with axis X). The second end of the rotating movable element 1, opposite the first end, is free. According to the invention, the winding consists of a first section SI of length L1 originating at the first end of the element 1 and a second section S2 of length L2 in the extension of the first section SI, the first pitch pl of the turns of the first section SI being smaller (strictly less) than the second pitch p2 of the turns of the second section S2.

[0059] Advantageously, when the insert according to the invention is used in a heat exchanger tube, the moving element is rotated by the circulating fluid. This increases the turbulence of the circulating fluid, improves heat exchange, and homogenizes the temperature of the circulating fluid over the entire cross-section of the tube. This prevents the formation of hot spots on the tube wall and consequently significantly reduces the risk of solid deposit formation and improves heat transfer, which is typically hampered by this type of deposit. The rotating insert also scrapes away any deposits that may have formed on the wall, thus reducing fouling. In addition to reducing deposits, heat transfer is improved due to the increased turbulence of the circulating fluid caused by the rotation of the insert, which enhances convective heat transfer.Indeed, the mere presence of the insert, and even more so its rotation, creates turbulence which leads to increased heat transfer by reducing the thickness of the heat transfer boundary layer and thus the transfer resistance near the wall. The heat transfer performance of tubular heat exchangers incorporating such inserts is therefore improved, as is the lifespan of the heat exchangers.

[0060] The rotation threshold of an insert corresponds to the minimum surface velocity of the circulating fluid allowing the rotation of the moving element of the insert. The moving element, rotating in the opposite direction to the helical winding of the spring, with a speed that depends on its weight, its geometric characteristics, the flow rate, the viscosity and the density of the circulating fluid, therefore has its own rotation threshold.

[0061] Within the framework of the present invention, the insert according to the invention has the capacity to have a low rotation threshold compared to existing rigid helical winding type inserts.

[0062] Surprisingly, the inventors have shown that the presence of an initial section with a tighter pitch compared to the rest of the winding of the moving element of the insert, in particular according to the specifications described below, makes it possible to reduce the threshold for starting rotation of the insert, thus ensuring a mechanical effect in low flow velocity ranges (typically less than 1 m / s) of the fluid in the heat exchanger tube, which improves the flexibility of use of this type of insert.

[0063] Preferably, the pitch pl of the first section SI is between 5 mm and 20 mm, preferably is between 5 mm and 15 mm, and more preferably between 7 mm and 12 mm.

[0064] Preferably, the pitch p2 of the second section S2 is between 10 mm and 60 mm, preferably is between 20 mm and 40 mm, it being understood that p2 > pl.

[0065] Advantageously, the ratio between the pitch pl and the pitch p2 is between 0.1 and 0.7, preferably between 0.20 and 0.45. The pitch can be defined in general as a function of the angle of inclination of the turns and the diameter of the turns of the rigid helical winding D, according to the following relation: pitch = (ji x D) / tana.

[0066] The angle of inclination of the turns a is defined with respect to the axis of the winding coinciding with the X axis of the heat exchanger tube in which the insert is mounted. Reference is made to angle ai for the angle of inclination of the turns of the first section of the winding, and to angle a2 for the angle of inclination of the turns of the second section of the winding, as shown in [Fig.2].

[0067] Advantageously, the rotation threshold of an insert according to the invention is less than 1 m / s, preferably between 0.1 m / s and 0.9 m / s. For example, the rotation threshold of an insert according to the invention is between 0.5 m / s and 0.9 m / s.

[0068] Advantageously, the length L1 of the first section SI is between 100 mm and 3000 mm, preferably between 200 mm and 1000 mm.

[0069] The first section SI and the second section S2 are joined together, and can form a single piece or be two separate pieces connected so as to be joined together by means of assembly such as a hook-washer assembly or any other means of assembly.

[0070] The total length of the insert is essentially constituted by the total length of the rigid helical winding which is the sum of the lengths L1 and L2 of the first and second sections.

[0071] The length L2 of the second section S2 can therefore be defined as the total length of the insert, related to the length of the heat exchanger tube, minus the length L1 of the first section. For example, if the total length of the insert is equal to that of the tube and is 6,000 mm, the length L2 is approximately between 5,900 mm and 4,000 mm, and preferably approximately between 5,800 mm and 4,000 mm.

[0072] The total length of the insert is less than or equal to the total length of the tube 10 of the heat exchanger, and preferably between 50% and 100% of the total length of the tube 10 of the heat exchanger: the total length of the insert is preferably between Lt / 2 and Lt, with Lt being the length of the tube 10 of the exchanger.

[0073] The heat exchanger tube 10 can have a total length of between 500 mm and 15,000 mm, preferably between 1,000 mm and 6,000 mm. For example, heat exchangers commonly used in oil refining, for instance in the preheating of crude oil in atmospheric distillation, can include heat exchanger tubes ranging from 1 meter to 6 meters in length. In the nuclear field, heat exchangers Condensers in nuclear power plants can have tubes up to 14 meters long.

[0074] The rigid helical winding has a diameter D, which corresponds to the diameter of the turns of the winding. The diameter D is common to the first and second sections SI and S2 constituting the rigid helical winding. Advantageously, the diameter D of the winding turns is greater than or equal to 80% of the diameter Dt of the heat exchanger tube 10, preferably greater than or equal to 90% of the diameter Dt, in order to generate optimal turbulence in the circulating fluid and to scrape deposits from the tube wall effectively. Preferably, the diameter D of the winding turns is between 80% and 99% of the diameter Dt of the heat exchanger tube 10, more preferably between 85% and 95% of the diameter Dt.

[0075] The diameter of the tubes (internal diameter Dt) can be between 10 mm and 100 mm, preferably between 10 mm and 50 mm.

[0076] Advantageously, there is a gap "c" between the insert and the inner wall of the tube 10 such that the helical winding of the moving element does not touch the tube wall, as referred to in [Fig. 4], which shows a rear view of a portion (part of the first section) of the insert and the heat exchanger tube, in order to avoid damaging the tube wall, for example, creating scratches that could form surface irregularities that could promote corrosion. This gap "c" is preferably between 1 mm and 3 mm.

[0077] The winding can have a cross-section taking different shapes, and preferably has a circular or square cross-section, and more preferably has a circular cross-section. In the case of a square cross-section or another shape, the diameter of the cross-section is understood to be an equivalent diameter D_eq, defined as follows: D_eq = 4 * Area_of_cross-section / perimeter of cross-section.

[0078] The rod, preferably metallic, forming the rigid helical winding has a diameter e1 at the level of the first section SI, and has a diameter e2 at the level of the second section S2. The diameters el and e2 are preferably between 0.5 mm and 5 mm, more preferably between 1 mm and 3 mm. The diameters el and e2 can be identical or different. Having identical diameters el and e2 has the advantage of simplifying the manufacture of the insert.

[0079] The winding direction, which can also be defined as the direction of the pitch of the turns, can be clockwise, or counterclockwise (relative to the direction of the flow of the fluid in the tube, represented by an arrow along the X axis in the figures).

[0080] The first end of the rotating movable element 1, attached to the mechanical link 22, may include a ring la or any other means of attachment to the mechanical link 22.

[0081] The insert material may be carbon steel, stainless steel, or any other metal or metal alloy material such as Inconel®, providing the insert with the required rigidity and preferably resistance to high temperatures and corrosion. The insert material is preferably less hard than the heat exchanger tube material to prevent degradation of the tube.

[0082] For highly corrosive fluids, the material forming the insert can be coated with a layer of a protective material, typically a polymer layer.

[0083] According to another embodiment, the material forming the insert can be a polymer or composite material (metal or metal alloy with a polymer material, or different types of polymers, or a composite material combining different types of reinforcements, such as fibers, particles, etc., with different matrices, such as a polymer, metallic or ceramic matrix).

[0084] The rigid helical winding of the moving element which is set in free rotation is a robust element, i.e. one whose risk of breakage is low.

[0085] The system for attaching the insert to the tube can be a traditional attachment system, for example, such as that described in patents FR2612267 and FR2639425. The attachment system is advantageously arranged along the X-axis of the heat exchanger tube so that the moving element of the insert can rotate about said axis. The attachment system is typically positioned at the inlet of the tube, and the rotating moving element of the insert is connected to the attachment system and positioned downstream in the tube. An example of a traditional attachment system 20 is shown in [Fig. 3], and comprises a bearing 23 and the mechanical linkage 22, typically formed by a rotating trunnion. Said trunnion 22 is fixed to the moving element 1 of the insert so that the insert is free to rotate about the X-axis of the tube 10.The bearing 23 comprises a stirrup-shaped part 23a, typically a single-piece component made of a rigid material capable of elastic deformation, the end of which is in the form of two arms allowing attachment to the tube 10, and a central part 23b comprising an opening for retaining the trunnion 22. The two arms of the stirrup-shaped part 23a are separated by a distance such that the arms can be forcibly engaged in an open end of the tube 10 to bear elastically against the inner wall of the tube, so as to make said part 23a of the bearing 23 rigidly attached to the tube 10. The trunnion 22 comprises a straight cylindrical rod engaged in the opening of the central part 23b of the bearing 23 and a hook-shaped end 21 that can be hooked onto the ring 1a or any other part. another means of securing is included in the first end of the moving element 1. The other end of the trunnion 22 has a head in the form of a washer suitable for holding it captive in the bearing 23. An anti-wear washer can also be interposed between the bearing and the head of the trunnion.

[0086] Each insert advantageously includes its own tube fixing system, although a common fixing system shared between the inserts of the other heat exchanger tubes would not fall outside the scope of the present invention.

[0087] Other systems for fixing the insert to the tube 10 can be used without departing from the scope of the present invention.

[0088] The present invention also relates to a heat exchanger comprising a plurality of tubes 10 through which a fluid flows, comprising an insert according to the invention, in particular fixed to the upstream end of at least one of these tubes.

[0089] The heat exchanger according to the invention is advantageously a shell and tube heat exchanger as defined above.

[0090] The heat exchanger can be single-phase or two-phase, that is to say, the fluid on the tube side can comprise a single phase, for example liquid, or two phases, typically liquid and gas. Preferably, the heat exchanger comprising at least one insert according to the invention is single-phase.

[0091] The length of the tubes can be between 500 mm and 15,000 mm, preferably between 1,000 mm and 6,000 mm.

[0092] The diameter of the tubes (internal diameter Dt) can be between 5 mm and 100 mm, preferably between 10 mm and 80 mm, preferably between 10 mm and 50 mm.

[0093] The heat exchanger preferably comprises a plurality of horizontal tubes (the axis of the tubes being horizontal). In this case, the insert is itself horizontal in the operating position. The invention also includes heat exchangers with vertical tubes. In this case, the insert is itself vertical in the operating position.

[0094] The present invention also relates to the use of an insert for a tubular heat exchanger.

[0095] In particular, the present invention relates to the use of such an insert during the preheating of crude oil in an atmospheric crude oil distillation process. In the field of oil refining, it is common to carry out atmospheric distillation of crude oil which is preheated, before being sent to the distillation column, in tubes of one or more heat exchangers in contact with the hot atmospheric residue from atmospheric distillation. The present invention thus relates to the use of an insert for a tubular heat exchanger according to the invention during the preheating of crude oil, in particular an atmospheric distillation process employing one or more exchangers heat exchangers comprising a plurality of tubes through which crude oil flows, the exchanger(s) being equipped with at least one insert according to the invention, in particular fixed to the upstream end of at least one of said tubes. The use of such an insert in this context notably provides operational flexibility at both low and high flow rates, which can be linked to a transient or steady-state regime.

[0096] The heat exchanger inserts according to the invention can be used in other industrial processes employing tubular heat exchangers and fluids, including but not limited to fluids that may foul said exchangers, particularly in the field of oil refining or petrochemicals, without departing from the scope of the present invention.

[0097] The present invention thus relates, for example, to the use of a tubular heat exchanger insert as described in this description in a hydrotreating or hydroconversion process of hydrocarbon feedstocks, in particular petroleum cuts, typically for preheating such a feedstock by means of so-called "feed-effluent" exchangers incorporating at least one insert according to the invention, in which the feedstock is heated by an effluent from the hydrotreating or hydroconversion unit.

[0098] The present invention also relates to the use of a tubular heat exchanger insert as described herein for the evaporation or condensation of a fluid in a nuclear power plant. The heat exchangers are then of the evaporator or condenser type, such as reboilers in distillation columns or condensers in nuclear power plants. Examples

[0099] The examples below are based on the implementation of a so-called "cold" experimental model, and aim to show some of the advantages of the heat exchanger insert and its use according to the invention.

[0100] The cold model includes a transparent PVC heat exchanger tube with a length of 3 m and a diameter of 21 mm (internal diameter Dt), in which water at ambient temperature and pressure is circulated, over a surface velocity range in the tube of between 0.5 and 2 m / s.

[0101] 3 examples of inserts are tested:

[0102] - Example A: Example of an insert according to the prior art, as illustrated in [Fig. 1], in in which the rigid helical winding consists of a single section of fixed pitch p.

[0103] - Example B: Example of an insert according to the invention, according to an embodiment such as illustrated in [Fig.2], in which the rigid helical winding consists of two successive sections SI and S2 of different pitches pl and p2, with pl less than p2.

[0104] - example C: example of an insert not in accordance with the invention, as illustrated in [Fig.7], in which the rigid helical winding consists of two successive sections SI and S2 of different pitches pl and p2, with pl less than p2, repeated twice (RI and R2).

[0105] The rigid helical winding of the moving element of the inserts according to examples A, B and C is made of carbon steel and has a circular cross-section. The winding direction is clockwise relative to the position of the insert at the tube inlet.

[0106] The main geometric parameters of the rigid helical winding of the moving element of the inserts according to examples A, B and C are shown in Table 1 below.

[0107] [Tables] Parameters D (mm) L (m) L1 (m) L2 (m) P (mm) pl (mm) p2 (mm) e (mm) el, e2 (mm) Example A (prior art - non-compliant) 18.7 3.0 - - 10 - - 1.5 - Example B (compliant) 18.7 - 0.5 2.5 - 10 35 - 1.5 Example C (non-compliant) 18.7 - 0.5x2 (*) 1.0 x2( *) - 10 35 - 1.5

[0108] In Table 1: - D, L, p and e are respectively the diameter, total length, pitch of turns and thickness of the rigid helical metal winding of the insert according to example A; - L1 and L2 are respectively the lengths of section SI and section S2 of the rigid helical metal winding of the insert according to example B. These lengths L1 and L2 are also those of sections SI and S2 of each of the two repetitions of the assembly S1 / S2 of the rigid helical metal winding of the insert according to example C. (*) Thus, according to example C, the rigid helical winding has a total length of 3 m broken down as follows: 2 times the length L1 (0.5 m) for each section SI, i.e. 0 1m, plus 2 times the length L2 ( 1 m) of the section S2, i.e. 2 m; - pl and p2 are respectively the pitches of sections SI and S2 of the rigid helical metal winding of the insert according to example B and according to example C. - el and e2 are respectively the thicknesses of sections SI and S2 of the rigid helical metal winding of the insert according to example B and according to example C.

[0109] To evaluate the performance of the insert in each example, the evolution of the rotation speed of the insert in revolutions per minute (rpm) is plotted as a function of the surface velocity of the liquid in the tube, normalized by the minimum velocity of the liquid for rotating the insert according to example A taken as a reference.

[0110] The diagram in [Fig.5] thus shows the rotation speed VR (RPM or rpm) of the insert according to example A (rigid helical winding of the moving element of the insert "A") and according to example B according to the invention (rigid helical winding of the moving element of the insert "B"), as a function of the normalized liquid speed VF: VF / VFref, VFref being the minimum liquid speed for starting rotation of the insert according to example A.

[0111] According to the diagram in [Fig. 5], the rotation speed of the insert according to example A is 1 m / s, and that of an insert according to example B is less than 1 m / s. The results indicate that an insert according to the invention, as exemplified in example B, makes it possible to reduce the rotation threshold of the insert by 20% (-20%), thus allowing better performance in reducing fouling at low fluid speeds, thanks to the rotary mechanical effect.

[0112] The test results of the insert according to example C, which comprises a helical winding consisting of two repetitions of the sequence of an SI section followed by an S2 section, show that the periodic addition of a section with a tighter twist pitch than the other section does not reduce the threshold fluid speed for rotation. On the contrary, the use of two SI sections with a tighter twist pitch compared to the S2 section located in the extension of the SI section has a counterproductive effect: there is no rotation of the insert even at the highest speeds. The tighter twist pitch on two periodic SI sections causes a vibration phenomenon rather than a rotational movement. Moreover, this configuration causes a significantly greater increase in pressure drop, visible in the diagram of [Fig.6] representing the normalized pressure loss, which is the ratio between the pressure loss of the tested insert A?! and the pressure loss of the empty tube, APtv, generated by the inserts according to examples A, B, and C, as a function of the normalized fluid velocity VF (VF / VFref).

Claims

Demands

1. Insert for heat exchanger tube, said insert comprising a rotating movable element (1) having a rigid helical winding of a rod comprising several turns, said element having: a first end fixed to a mechanical link (22) of a fixing system (20) of said element to said tube (10), said mechanical link allowing free rotation of said element (1) about itself about the axis (X) of said tube (10) under the action of a fluid passing through said tube (10), a second free end, and said rigid helical winding being constituted by a first section (SI) of length L1 originating at the first end and a second section (S2) of length L2 in the extension of the first section (SI), the first pitch pl of the turns of the first section (SI) being smaller than the second pitch p2 of the turns of the second section (S2).

2. Insert according to claim 1, wherein the pitch pl is between 5 mm and 20 mm, preferably between 5 mm and 15 mm.

3. Insert according to claim 1 or 2, wherein the pitch p2 is between 10 mm and 60 mm, preferably between 20 mm and 40 mm, it being understood that p2 > pl.

4. Insert according to any one of the preceding claims, wherein the length L1 is between 100 mm and 3000 mm, preferably between 200 mm and 1000 mm.

5. Insert according to any one of the preceding claims, of a total length between 50% and 100% of the total length Lt of the heat exchanger tube.

6. Insert according to claim 5, inserted into a tube of total length Lt between 500 mm and 15,000 mm, preferably between 1,000 mm and 6,000 mm.

7. Insert according to any one of the preceding claims, wherein the rigid helical winding has a circular or square cross-section, preferably circular.

8. Insert according to any one of the preceding claims, wherein the diameter e1 of the winding stem of the first section (SI) and the diameter e2 of the winding stem of the second section (S2) are between 0.5 mm and 5 mm, preferably between 1 mm and 3 mm.

9. Insert according to any one of the preceding claims, wherein the diameter e1 of the winding stem of the first section (S1) and the diameter e2 of the winding stem of the second section (S2) are identical.

10. Insert according to any one of the preceding claims, wherein the diameter of the turns of the winding D is between 80% and 99% of the internal diameter of the heat exchanger tube Dt, preferably between 85% and 95%.

11. Insert according to any one of the preceding claims, wherein the stem of the rigid helical winding is metallic.

12. Heat exchanger comprising a plurality of tubes (10) through which a fluid flows, comprising an insert according to any one of the preceding claims, fixed to the upstream end of at least one of said tubes.

13. Use of a tubular heat exchanger insert according to any one of claims 1 to 11 for preheating crude oil in an atmospheric distillation process of said crude oil, or for preheating a hydrocarbon feedstock in a hydroconversion or hydrotreating process of said hydrocarbon feedstock, or for evaporating or condensing a fluid in a nuclear power plant.

Citation Information

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